CROSS-REFERENCE TO RELATED APPLICATION
BACKGROUND OF THE INVENTION
[0001] The present invention relates generally to systems, methods, and apparatus for mounting
accessories on helicopters, and, more particularly, for mounting cameras, gimbals,
scanners and other imaging devices on helicopters.
[0002] Conventional methodology for the mounting of cameras, gimbals, scanners and various
types of imaging devices on helicopters has involved fixed bracketry attached to airframe
hardpoints capable of providing sufficient structural strength to bear the loads involved
in aircraft maneuvering and rough landing forces. These systems generally position
the installed devices (e.g., camera or gimbal) in fixed positions either on the nose,
chin, side, or tail of the aircraft.
[0003] WO 2010/058195 A1 discloses such a system for an unmanned aerial vehicle (UAV) comprising a surveillance
system characterised in that the direction of flight towards a target is achievable
by shifting the centre of gravity of the vehicle towards the target through pointing
the surveillance system at the target.
[0004] However, these configurations are limited in that these fixed positions do not allow
an unhindered, 360 degree field of view for the installed device. This is due to the
fact that the landing skids or wheels of the helicopter must extend below the level
of the camera, gimbal, or other device so that the aircraft may land safely. As such,
the installed device's view is hindered by the structure of the helicopter.
[0005] Additionally, these fixed camera mounts can cause an imbalance in the weight of the
aircraft due to the fact that a heavy camera gimbal or device is installed on only
one side of the aircraft. As such, these conventional helicopter camera configurations
often require crabbing of the aircraft to account for the weight imbalance.
[0006] Thus, it can readily be appreciated that there is a need for a helicopter mount that
allows for a camera, gimbal, or other such device to be installed and positioned such
that the structure of the helicopter does not obstruct the view of the device. It
can also be appreciated that there is a further need for a helicopter mount that minimizes
weight imbalance on an aircraft with a camera
gimbal or other imaging device installed. The present invention fulfills these needs
and provides further related advantages.
SUMMARY OF THE INVENTION
[0007] The present invention resides in a mounting system for mounting an imaging device
to a helicopter to capture aerial images according to the features of claim 1. In
one embodiment, the system may comprise a frame, an axle mounted to the frame, an
arm attached to the axle, an imaging device mounted on the arm, a counterweight, and
a motor configured to control rotation of the axle. The system is configured to be
mounted to a helicopter for the capture of aerial images. The frame is configured
to be mounted to a helicopter. The counterweight is configured such that re-positioning
of the imaging device will result in a corresponding re-positioning of the counterweight.
In certain embodiments, the imaging device may be a camera gimbal.
[0008] The mounting system may further comprise a second arm mounted on the axle, and the
counterweight may be positioned on the second arm. In a more particular embodiment,
the counterweight may be built into the end of the second arm.
[0009] In an alternative embodiment, the mounting system may comprise a second axle mounted
on the frame, and a second arm mounted on the second axle, wherein the counterweight
is positioned on the second arm.
[0010] The mounting system may further comprise a processor for controlling the rotation
of the motor, and, thereby, the positioning of the imaging device. The mounting system
may also include one or more sensors that provide information to the processor. The
processor can automatically adjust the position of the imaging device based on information
from the one or more sensors. The sensors might provide pitch and roll information
to the processor.
[0011] The mounting system might also include a selective damping mechanism, such as a magnetic
brake, for locking the imaging device in a given position.
[0012] The imaging device and the counterweight may be of such weight and positioned such
that the center of gravity of the mounting system remains within an acceptable range
when the position of the imaging device is changed.
[0013] The disclosure is also embodied in a method for operating an image device mount,
such as the mounting system described above according to the features of claim 10.
The method comprises mounting the imaging device mount onto a helicopter; positioning
the imaging device mount in a stowed position, the stowed position being a position
in which no portion of the imaging device is positioned below the lowest point of
the helicopter; taking off in the helicopter with the imaging device mount in the
stowed position; and re-positioning the imaging device mount into a deployed position
that is different from the stowed position. The deployed position may be a position
in which at least a portion of the imaging device is positioned below the lowest point
of the helicopter.
[0014] The method might further comprise the step of locking the imaging device into a deployed
position using a selective damping mechanism. As discussed above, the imaging device
mount might include a processor for controlling the motor and one or more sensors
in communication with the processor to provide information to the processor. In this
embodiment, the method might also comprise the step of automatically re-positioning
the imaging device based on information from the one or more sensors. The information
might comprise rate and pitch information.
[0015] Other features and advantages of the invention should become apparent from the following
description of the preferred embodiments, taken in conjunction with the accompanying
drawings, which illustrate, by way of example, the principles of the invention.
BRIEF DESCRIPTION OF THE DRAWINGS
[0016] Presently preferred embodiments of the invention will now be described, by way of
example only, with reference to the following drawings.
FIG. 1 is a top-down view of a single axle swing down mount, in accordance with an
embodiment of the present disclosure.
FIG. 2 is a side view of the single axle swing down mount of FIG. 1.
FIG. 3 is a top-down view of a double axle swing down mount, in accordance with one
embodiment of the present disclosure.
FIG. 4 is a side view of the double axle swing down mount of FIG. 3.
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0017] Referring now to the drawings, FIGS. 1 and 2 depict a single axle configuration of
a swing down mount system in accordance with an embodiment of the present invention,
and FIGS. 3 and 4 depict a double axle configuration in accordance with another embodiment
of the present invention. A common principle of the two configurations is the use
of one or more rotating axle tube assemblies with arms attached to the ends of the
axle tube assemblies that move in opposing directions. These mounts may be used to
mount a camera gimbal or other image recording assembly to a helicopter for aerial
images. Some commonly used helicopter models for aerial images include the Eurocopter
AS350 Ecureuil/Astar helicopter and the Eurocopter AS355 TwinStar helicopter.
[0018] FIG. 1 provides a top-down view of one embodiment of a swing down mount 10 for use
with an aircraft. This embodiment comprises a frame 11 and a single axle 12 that is
mounted on the frame. On one end of the axle 12, there is attached a first arm 14
with a camera gimbal 16 installed. Although the figures use a camera gimbal 16 as
the installed device, it may be any other camera, scanner, or device installed on
the outside of an aircraft. At the opposite end of the axle 12 is a second arm 18
extending in the opposite direction of the first arm 14. The second arm 18 mounts
a ballast or counterweight 20 that is similar or substantially identical to the mass
of the camera gimbal 16 on the opposite side. By providing this counterweight 20 to
balance out the gimbal 16, the lateral center of gravity remains substantially unchanged
or within the limits of an aircraft. In one embodiment, the tubing used for the axle
12 and the arms 14, 18 is made of carbon fiber and has a diameter of approximately
8 inches. The elbows connecting the axle 12 with the arms 14, 18 may be reinforced
with 4730 steel oversleeves or the like. The counterweight 20 may be contained within
the tubing of the second arm 18. Preferably, the weight is concentrated near the end
of the arm 18 so as to effectively balance the weight of the camera gimbal 16, which
is located at the end of the first arm 14.
[0019] The swing down mount 10 is configured to be mounted on an aircraft to capture aerial
images. The frame 11 of the mount 10 can be mounted onto a helicopter such that the
axle 12 extends across the longitudinal axis of the helicopter fuselage. Mounting
of the frame 11 to the helicopter may be carried out in a multitude of ways. In the
depicted embodiment, four struts 13 are built into or attached to the frame 11. These
struts 13 are positioned such that they align with hardpoints on the helicopter. For
example, on the Eurocopter A350 and A355 helicopters, four hardpoints are built into
the cross-tubes of the aircraft with half-clamps positioned at each hardpoint. The
struts 13 may be positioned on the frame 11 so as to line up with these half-clamps
and sized to fit into and bolted to the half-clamps.
[0020] FIG. 1 depicts the swing down mount 10 in a stowed configuration for take-off and
landing with its arms 14, 18 substantially horizontal to the ground. In this configuration,
the arms 14, 18, and the camera gimbal 16, are positioned above the skids 22 of the
helicopter so that the helicopter can safely touch down on the ground without interference
from the mount 10. In the displayed configuration, the camera gimbal 16 extends toward
the rear of the helicopter while the counterweight 20 extends forward, but this may
be reversed, so that the camera gimbal 16 extends forward for take off and landing,
and the counterweight 20 extends backward.
[0021] Upon take-off, the camera gimbal 16 may be deployed below the level of the helicopter
skids 22 by rotating the axle 12 approximately 90-degrees, thereby moving the device
to a position below the aircraft structure and allowing for the gimbal 16 to have
a clear, unobstructed 360-degree view. FIG. 2 provides a side view of the swing down
mount 10 to more clearly demonstrate this movement. The axle 12 may be surrounded
by a thin-ring sealed ball bearing 15 to facilitate smooth rotation of the axle 12.
The length of the arm 14 will depend upon the specific airframe, the size and weight
of the gimbal 16, and the desired vertical field of view.
[0022] When the camera gimbal 16 is rotated downward, the second arm 18 with the counterweight
20 is rotated upward, and vice versa. The load through the axle 12 is balanced so
that relatively little motive force is needed to effect deployment. This motive force
may be provided by a belt or chain 26 coupled to an electric motor 24 to rotate the
axle 12. A large-diameter sprocket 25 is mounted on the axle 12 while a small-diameter
sprocket 27 is mounted on the motor 24, with the chain 26 connecting the large-diameter
and small-diameter sprockets 25, 27. The sprockets may be 1-inch sprockets. A 14-rpm
motor with a 7:1 ratio could be used for the motor 24. Alternatively, pneumatic rotation
or linear or any other means of motive power may be applied. Instead of a chain with
sprockets, large-diameter and small-diameter spur gears may be used. For example,
the drive gear of the motor might be connected to a 1 or 2 inch (2,54 or 5,08 cm)
spur gear, while a 10-12 inch (25,40 - 30,48 cm) spur gear is connected to the axle
12. The motor 24 may be a single motor or multiple motors working in tandem. The motor
24 should have sufficient power to withstand the torque exerted by the system in flight.
For example, if the gimbal 16 is a 30-inch (76,20 cm) sphere attached to a six-foot
(182,88 cm) arm 14, a motor or combination of motors that can provide between 700
and 1000 inch-pounds (between 79,09 and 112,98 Nm) of torque might be used.
[0023] In one embodiment, limit switches could define "stowed" and "deployed" end positions,
although other means of positioning could also be utilized. The center of gravity
for the entire mounting system 10, the device 16, and the counterweight 20 remains
substantially constant on the airframe in the lateral, longitudinal, and the vertical
positions, thereby providing a substantially constant aircraft control response regardless
of the position of the gimbal 16 during stowage, deployment, or final deployed position.
[0024] The camera gimbal 16 may also be rotated to provide alternative camera angles and
views as well, rather than simply a single 360 degree view from below the helicopter.
If the axle 12 is sufficiently long for the gimbal 16 to clear the sides of the aircraft,
the gimbal 16 may be rotated 360-degrees and stopped at any point along the rotation.
Magnetic brakes could be used to lock the camera gimbal 16 in any rotational position.
For example, from the horizontal stowed position depicted in FIGS. 1 and 2, the gimbal
16 may be rotated forward approximately 120 degrees to position the gimbal 16 at the
pilot's shoulder. This allows the pilot to maneuver the helicopter with the knowledge
that the camera's view is very similar to his own view. The ability to move the camera
gimbal 16 in this way makes it easier for the cameraman and the pilot to work together.
It also provides a creative tool to change the angle, perspective, and view of shots
taken by taking advantage of the ability to move and re-position the camera gimbal
16.
[0025] The mount 10 may also include a processor, computing device, or other processing
means to control the rotation of the axle 12, thereby controlling the positioning
of the gimbal 16 and counterweight 20. Sensors may also be placed on the helicopter
body that are in communication with the processor, computing device, or processing
means. The processor may also be in communication with the gimbal 16. The sensors
on the aircraft can detect the pitch and roll of the aircraft, and the processor can
use those readings to automatically adjust the motor 24, and thus, the position of
the gimbal 16. The processor can use the aircraft's pitch and roll readings to automatically
adjust the rotation of the axle 12, the position of the gimbal 16 and the orientation
of the camera within the gimbal so as to keep a steady shot or stay focused on a particular
subject.
[0026] In an emergency situation, such as in the event of a power loss or motor failure,
the need may arise for an alternative method to retract the camera gimbal 16 back
to the stowed position. A lithium-ion battery pack may be used to provide power to
the motor in the event of a power failure so as to provide a back-up source of power.
Alternatively, the mount system may take advantage of the natural drag created by
the gimbal 16 to move it into a horizontal position that is safe for landing. For
example, a 30-inch (76,20 cm) spherical gimbal will create approximately 130 lbs (58,97
kg). of drag at a speed of 30 knots (15,43 m/s). In the event of a power failure,
the axle 12 can be free to swing
such that the drag created from the forward motion of the helicopter will cause the
gimbal 16 to rotate backward and above the level of the landing skids. In this configuration,
second arm 18 and the counterweight 20 might be stream-lined so that they create relatively
little drag compared to the gimbal 16 so that the gimbal 16 can more easily fall back
into the stowed position. In a further embodiment, a spring-loaded retrieval system
may be used to pull the gimbal 16 back into a horizontal position in the event of
a power failure. The pilot of the helicopter may have a bicycle lever or other control
mechanism to release a locking mechanism, such as an over-center lock, to release
the motor drive gear from the axle gear, thereby allowing the axle to freely rotate.
A bungee cord could then pull the mount 10 back into a stowed position. Initiation
of this retrieval system by the pilot may also cause a detent wheel to catch and lock
the axle 12 and arms 14, 18 in their stowed position.
[0027] FIGS. 3 and 4 depict an alternative double axle configuration. In FIG. 3, the depicted
double axle swing-down mount 30 comprises a front axle 32 with a center mounted extension
arm 34 mounted proximate the nose of the airframe. On the end of the center mounted
extension arm 34, a camera gimbal 36 or other device may be mounted. A second axle
38 is mounted further back on the airframe with two arms 40a, 40b attached on either
end. On the ends of the arms 40a, 40b are two counterweights 42a, 42b. Preferably,
counterweights 42a, 42b are equal in mass so as to balance the mass distribution.
[0028] In the double axle swing-down mount 30, the axles 32, 38, are coupled together in
such a way that when the gimbal 36 is lowered in the front of the aircraft, the counterweights
42a, 42b are raised in the rear of the aircraft so that the forces are balanced throughout
the mechanism. In FIG. 3, the front axle 32 has a large sprocket 37 that is connected
to a motor sprocket 45 through a belt 46. The belt 46 also connects a second sprocket
41 to the motor sprocket 45 to control rotation of the rear axle 38. Ring bearings
35, 39 facilitate smooth rotation of the front axle 32 and rear axle 38. Alternatively,
coupling of the axles 32, 38 and the motor 44 may be performed by equipping both axles
32, 38 and the motor drive shaft with gears, toothed pulleys, or any other appropriate
means. Additionally, axles 32, 38 may be coupled to each other to create the described
off-setting movement, or any other appropriate configuration to achieve the desired
movement. FIG. 4 shows the double axle swing-down mount 30 from a side view.
[0029] The double axle swing-down mount 30 may gain motive power through the same means
as those described with respect to the single axle mount 10, and may be limited in
excursion with appropriate position sensors and hard mechanical stops. Both systems
may also employ a "fail safe" secondary means of system retrieval in the case of an
electrical failure, as was discussed above with respect to FIGS. 1 and 2. This "fail
safe" system may be implemented through the use of a secondary electrical back-up
system, secondary motors, pneumatic mechanisms, spring-loaded retrieval systems, or
any other appropriate means.
[0030] Provisions could also be made in the disclosed systems for longitudinal and lateral
compliance of the deployed gimbal or device by employed selective damping to the rotation
of the axles, possibly through the use of magnetic brakes. These provisions could
also include introducing a lateral "joint" that could be made active once the gimbal
or device has reached a pre-set deployed position. This feature could mitigate the
swing of the device mounting caused by helicopter control inputs, thereby increasing
gimbal or device stability and spatial positioning. Preferably, the disclosed mount
systems can be broken down for easy removal from the aircraft, transport, and then
re-attachment to another aircraft.
[0031] Although the invention has been disclosed with reference only to the presently preferred
embodiments, those of ordinary skill in the art will appreciate that various modifications
can be made without departing from the invention. Accordingly, the invention is defined
only by the following claims.
1. A mounting system (10, 30) for mounting a device, preferably an imaging device, on
helicopters, comprising:
a frame (11) being configured to be mounted to a helicopter;
an axle (12) mounted on the frame, the axle (12) having a first end and a second end;
a first arm (14) attached to the axle (12) at or near the first end of the axle (12);
a device (16) mounted on the first arm (14); and
a motor (24) configured to rotate the axle (12);
wherein the axle (12) is configured to rotate such that rotation of the axle (12)
re-positions the device (16); and
characterized in
a second arm (18) attached to the axle (12) at or near the second end of the axle
(12)
a counterweight (20) positioned on the second arm (18);
wherein the counterweight (20) is configured such that re-positioning of the device
(16) results in a corresponding re-positioning of the counterweight (20).
2. The mounting system of claim 1, wherein the device is a camera gimbal.
3. The mounting system of claim 1, wherein the counterweight is built into the second
arm.
4. The mounting system (10) of claim 1, further comprising a computing device for controlling
the position of the device.
5. The mounting system (10) of claim 4, further comprising one or more sensors in communication
with the computing device such that the computing device can automatically adjust
the position of the device (16) based on information from the one or more sensors.
6. The mounting system (10) of claim 5 wherein the one or more sensors are configured
to provide pitch and roll information to the computing device.
7. The mounting system (10) of claim 1, further comprising a selective damping mechanism
for locking the device (16) in a given position.
8. The mounting system (10) of claim 7, wherein the selective damping mechanism comprises
a magnetic brake.
9. The mounting system of claim 1, wherein the counterweight and the device are positioned
such that the center of gravity of the mounting system remains within an acceptable
range when the position of the device is changed.
10. A method for operating a mounting system (10, 30) for mounting a device, preferably
an imaging device, on helicopters,
- the mounting system (10, 30) comprising:
a frame (11, 31) being configured to be mounted to a helicopter,
an axle (12, 32) mounted on the frame (11, 31),
a first arm (14, 34) attached to the axle (12, 32) at or near the first end of the
axle (12, 32),
a device (16, 36) mounted on the first arm (14, 34),
a counterweight (20, 42), and
a motor (24, 45) configured to rotate the axle (12,32),
wherein the axle (12, 32) is configured to rotate such that rotation of axle (12,
32) re-positions the device, wherein a second arm is attached to the axle (12, 32)
at or near the second end of the axle (12, 32), and
wherein the counterweight (20, 42) is configured such that re-positioning of the device
(16, 36) results in a corresponding re-positioning of the counterweight (20, 42),
- the method comprising:
mounting the mounting system (10) onto a helicopter;
positioning the mounting system (10, 30) in a stowed position, the stowed position
being a position in which no portion of the mounting system (10,30) is positioned
below the lowest point of the helicopter;
taking off in the helicopter with the mounting system (10, 30) in the stowed position;
and, while in flight,
re-positioning the mounting system into a deployed position that is different from
the stowed position.
11. The method of claim 10, wherein the device (16, 36) is a camera gimbal.
12. The method of claim 10, wherein the deployed position comprises at least a portion
of the device (16, 36) being positioned below the lowest point of the helicopter.
13. The method of claim 12, wherein the mounting system (10, 30) further comprises a selective
damping mechanism, and
the step of re-positioning the mounting system (10, 30) into a deployed position further
comprises locking the device (16, 36) into the deployed position using the selective
damping mechanism.
14. The method of claim 10, wherein
- the mounting system (10, 30) comprises:
a processor configured to control the motor (24, 45), and
one or more sensors in communication with the processor for providing information
to the processor, and further wherein,
- the method further comprises:
the step of automatically re-positioning the device (16, 36) based on the information
from the one or more sensors.
15. The method of claim 14, wherein the information provided by the one or more sensors
comprises pitch and roll information.
1. Montagesystem (10, 30) zur Montage einer Vorrichtung, vorzugsweise einer Bilderzeugungsvorrichtung,
an Helikoptern, umfassend:
einen Rahmen (11), der eingerichtet ist, um an einem Helikopter montiert zu werden;
eine Achse (12), die an dem Rahmen montiert ist, wobei die Achse (12) ein erstes Ende
und ein zweites Ende aufweist;
einen ersten Arm (14), der an der Achse (12) am oder nahe dem ersten Ende der Achse
(12) befestigt ist;
eine Vorrichtung (16), die an dem ersten Arm (14) montiert ist; und
einen Motor (24), der eingerichtet ist, die Achse (12) zu rotieren;
wobei die Achse (12) eingerichtet ist, derart zu rotieren, dass die Rotation der Achse
(12) die Vorrichtung (16) umpositioniert; und
gekennzeichnet durch
einen zweiten Arm (18), der an der Achse (12) am oder nahe dem zweiten Ende der Achse
(12) befestigt ist;
ein Gegengewicht (20), das auf dem zweiten Arm (18) positioniert ist;
wobei das Gegengewicht (20) derart eingerichtet ist, dass das Umpositionieren der
Vorrichtung (16) in einem entsprechenden Umpositionieren des Gegengewichts (20) resultiert.
2. Montagesystem nach Anspruch 1, wobei die Vorrichtung ein Kamera-Gimbal ist.
3. Montagesystem nach Anspruch 1, wobei das Gegengewicht in den zweiten Arm eingebaut
ist.
4. Montagesystem (10) nach Anspruch 1, ferner umfassend eine Rechenvorrichtung zum Steuern
der Position der Vorrichtung.
5. Montagesystem (10) nach Anspruch 4, ferner umfassend einen oder mehrere Sensoren in
Kommunikation mit der Rechenvorrichtung, sodass die Rechenvorrichtung die Position
der Vorrichtung (16) basierend auf Informationen von dem einen oder den mehreren Sensoren
automatisch anpassen kann.
6. Montagesystem (10) nach Anspruch 5, wobei der eine oder die mehreren Sensoren eingerichtet
sind, um der Rechenvorrichtung Neigungs- und Rollinformationen bereitzustellen.
7. Montagesystem (10) nach Anspruch 1, ferner umfassend einen selektiven Dämpfungsmechanismus
zum Verriegeln der Vorrichtung (16) in einer vorgegebenen Position.
8. Montagesystem (10) nach Anspruch 7, wobei der selektive Dämpfungsmechanismus eine
Magnetbremse umfasst.
9. Montagesystem nach Anspruch 1, wobei das Gegengewicht und die Vorrichtung so positioniert
sind, dass der Schwerpunkt des Montagesystems innerhalb eines akzeptablen Bereichs
bleibt, wenn die Position der Vorrichtung verändert wird.
10. Verfahren zum Betreiben eines Montagesystems (10, 30) zur Montage einer Vorrichtung,
vorzugsweise einer Bilderzeugungsvorrichtung, an Helikoptern,
- wobei das Montagesystem (10, 30) umfasst:
einen Rahmen (11, 31), der eingerichtet ist, um an einem Helikopter montiert zu werden;
eine Achse (12, 32), die an dem Rahmen (11, 31) montiert ist;
einen ersten Arm (14, 34), der an der Achse (12, 32) am oder nahe dem ersten Ende
der Achse (12) befestigt ist;
eine Vorrichtung (16, 36), die an dem ersten Arm (14, 34) montiert ist;
ein Gegengewicht (20, 42), und
einen Motor (24, 45), der eingerichtet ist, die Achse (12, 32) zu rotieren;
wobei die Achse (12, 32) eingerichtet ist, derart zu rotieren, dass die Rotation der
Achse (12, 32) die Vorrichtung umpositioniert, wobei ein zweiter Arm an der Achse
(12, 32) am oder nahe dem zweiten Ende der Achse (12, 32) befestigt ist, und
wobei das Gegengewicht (20, 42) derart eingerichtet ist, dass das Umpositionieren
der Vorrichtung (16, 36) in einem entsprechenden Umpositionieren des Gegengewichts
(20, 42) resultiert,
- wobei das Verfahren umfasst:
Montieren des Montagesystems (10) an einem Helikopter;
Positionieren des Montagesystems (10, 30) in einer Verstauungsposition, wobei die
Verstauungsposition eine Position ist, in welcher kein Bereich des Montagesystems
(10, 30) unterhalb des tiefsten Punkts des Helikopters positioniert ist;
Abheben in dem Helikopter mit dem Montagesystem (10, 30) in der Verstauungsposition;
und, während des Fluges,
Umpositionieren des Montagesystems in eine Ausfahrposition, die sich von der Verstauungsposition
unterscheidet.
11. Verfahren nach Anspruch 10, wobei die Vorrichtung ein Kamera-Gimbal ist.
12. Verfahren nach Anspruch 10, wobei die Ausfahrposition wenigstens einen Bereich der
Vorrichtung (16, 36) umfasst, der unterhalb des tiefsten Punkts des Helikopters positioniert
ist.
13. Verfahren nach Anspruch 12, wobei das Montagesystem (10, 30) ferner einen selektiven
Dämpfungsmechanismus umfasst, und
wobei der Schritt des Umpositionierens des Montagesystems (10, 30) in eine Ausfahrposition
ferner ein Verriegeln der Vorrichtung (16, 36) in der Ausfahrposition durch Verwendung
des selektiven Dämpfungsmechanismus umfasst.
14. Verfahren nach Anspruch 10, wobei
- das Montagesystem (10, 30), umfasst:
einen Prozessor, der eingerichtet ist, um den Motor (24, 45) zu steuern, und
einen oder mehrere Sensoren in Kommunikation mit dem Prozessor, um dem Prozessor Informationen
bereitzustellen, und ferner wobei,
- das Verfahren ferner umfasst:
den Schritt des automatischen Umpositionierens der Vorrichtung (16, 36) basierend
auf den Informationen des einen oder der mehreren Sensoren.
15. Verfahren nach Anspruch 14, wobei die von dem einen oder den mehreren Sensoren bereitgestellten
Informationen Neigungs- und Rollinformationen umfassen.
1. Système de montage (10, 30) pour monter un dispositif, de préférence un dispositif
d'imagerie, sur des hélicoptères, comprenant :
un cadre (11) étant configuré pour être monté sur un hélicoptère ;
un essieu (12) monté sur le cadre, l'essieu (12) ayant une première extrémité et une
deuxième extrémité ;
un premier bras (14) fixé à l'essieu (12) au niveau ou près de la première extrémité
de l'essieu (12) ;
un dispositif (16) monté sur le premier bras (14) ; et
un moteur (24) configuré pour faire tourner l'essieu (12) ;
dans lequel l'essieu (12) est configuré pour tourner de sorte que la rotation de l'essieu
(12) repositionne le dispositif (16) ; et
caractérisé par
un deuxième bras (18) fixé à l'essieu (12) au niveau ou près de la deuxième extrémité
de l'essieu (12)
un contrepoids (20) positionné sur le deuxième bras (18) ;
dans lequel le contrepoids (20) est configuré de sorte que le repositionnement du
dispositif (16) entraîne un repositionnement correspondant du contrepoids (20).
2. Système de montage de la revendication 1, dans lequel le dispositif est un berceau
de caméra.
3. Système de montage de la revendication 1, dans lequel le contrepoids est intégré dans
le deuxième bras.
4. Système de montage (10) de la revendication 1, comprenant en outre un dispositif informatique
pour commander la position du dispositif.
5. Système de montage (10) de la revendication 4, comprenant en outre un ou plusieurs
capteur(s) en communication avec le dispositif informatique de sorte que le dispositif
informatique puisse régler automatiquement la position du dispositif (16) sur la base
des informations provenant du ou des plusieurs capteur(s).
6. Système de montage (10) de la revendication 5, dans lequel le ou les plusieurs capteur(s)
est/sont configuré(s) pour fournir des informations de tangage et de roulis au dispositif
informatique.
7. Système de montage (10) de la revendication 1, comprenant en outre un mécanisme d'amortissement
sélectif pour verrouiller le dispositif (16) dans une position donnée.
8. Système de montage (10) de la revendication 7, dans lequel le mécanisme d'amortissement
sélectif comprend un frein magnétique.
9. Système de montage de la revendication 1, dans lequel le contrepoids et le dispositif
sont positionnés de sorte que le centre de gravité du système de montage reste dans
une plage acceptable lorsque la position du dispositif est modifiée.
10. Procédé de fonctionnement d'un système de montage (10, 30) pour monter un dispositif,
de préférence un dispositif d'imagerie, sur des hélicoptères,
- le système de montage (10, 30) comprenant :
un cadre (11, 31) étant configuré pour être monté sur un hélicoptère ;
un essieu (12, 32) monté sur le cadre (11, 31),
un premier bras (14, 34) fixé à l'essieu (12, 32) au niveau ou près de la première
extrémité de l'essieu (12, 32),
un dispositif (16, 36) monté sur le premier bras (14, 34),
un contrepoids (20, 42) et
un moteur (24, 45) configuré pour faire tourner l'essieu (12, 32),
dans lequel l'essieu (12, 32) est configuré pour tourner de sorte que la rotation
de l'essieu (12, 32) repositionne le dispositif,
dans lequel un deuxième bras est fixé à l'essieu (12, 32) au niveau ou près de la
deuxième extrémité de l'essieu (12, 32) et
dans lequel le contrepoids (20, 42) est configuré de sorte que le repositionnement
du dispositif (16, 36) entraîne un repositionnement correspondant du contrepoids (20,
42),
- le procédé comprenant le fait :
de monter le système de montage (10) sur un hélicoptère ;
de positionner le système de montage (10, 30) dans une position rangée, la position
rangée étant une position dans laquelle aucune partie du système de montage (10, 30)
n'est positionnée en dessous du point le plus bas de l'hélicoptère ;
de faire décoller l'hélicoptère avec le système de montage (10, 30) dans la position
rangée ; et, en vol,
de repositionner le système de montage dans une position déployée qui est différente
de la position rangée.
11. Procédé de la revendication 10, dans lequel le dispositif (16, 36) est un berceau
de caméra.
12. Procédé de la revendication 10, dans lequel la position déployée comprend au moins
une partie du dispositif (16, 36) étant positionnée en dessous du point le plus bas
de l'hélicoptère.
13. Procédé de la revendication 12, dans lequel le système de montage (10, 30) comprend
en outre un mécanisme d'amortissement sélectif, et
l'étape de repositionnement du système de montage (10, 30) dans une position déployée
comprend en outre le verrouillage du dispositif (16, 36) dans la position déployée
en utilisant le mécanisme d'amortissement sélectif.
14. Procédé de la revendication 10, dans lequel
- le système de montage (10, 30) comprend :
un processeur configuré pour commander le moteur (24, 45), et
un ou plusieurs capteur(s) en communication avec le processeur pour fournir des informations
au processeur, et dans lequel, en outre,
- le procédé comprend en outre :
l'étape de repositionnement automatique du dispositif (16, 36) sur la base des informations
provenant du ou des plusieurs capteur(s).
15. Procédé de la revendication 14, dans lequel les informations fournies par le ou les
plusieurs capteur(s) comprennent des informations de tangage et de roulis.